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Biology subjects

Tanoto, F. R.

Publications and source records attributed to Tanoto, F. R..

3 recordsLinked to original sources

Gelatinase regulates the egress of intracellular replicating populations during Enterococcus faecalis infection

Enterococcus faecalis is a common opportunistic pathogen, frequently isolated from chronic wounds, yet the mechanisms underlying its virulence and persistence in this niche remain incompletely understood. We previously showed that a subpopulation of E. faecalis can survive intracellularly for several days during murine wound infection and can replicate within macrophages, revealing an unexpected intracellular phase for this traditionally extracellular bacterium. Here, we identify the secreted metalloprotease gelatinase (GelE) and its regulator, the Fsr quorum sensing system, as key modulators of E. faecalis intracellular survival and replication. Mechanistically, Fsr quorum sensing is induced during intracellular replication, promoting GelE-dependent host cell lysis and bacterial egress. In the absence of active GelE, E. faecalis accumulates as large intracellular clusters, a phenotype observed consistently across GelE deficient wound isolates. In a mouse wound model, GelE deficient E. faecalis similarly exhibited higher intracellular numbers within wound infection-associated host cells. Together, our study uncovers GelE as a central effector that orchestrates the transition between intracellular and extracellular lifestyles of E. faecalis, providing a possible explanation for its persistence in chronic wound infection. Author summaryPathogenic bacteria are traditionally classified as either "intracellular" or "extracellular", but growing evidence suggests that many extracellular bacteria also adopt transient intracellular lifestyles that promote persistent and recurrent infection. Enterococcus faecalis, a leading cause of chronic wound infection, exemplifies this duality. We discovered that E. faecalis strains lacking the secreted protease gelatinase accumulate to high numbers inside host cells such as macrophages. Our data indicate that gelatinase facilitates bacterial escape following intracellular replication, regulating the transition between an intracellular and extracellular lifestyle. During infection, gelatinase-deficient bacteria remain hidden within various wound cell types, potentially evading immune clearance and antibiotic treatment. This work reveals a previously unrecognized role for gelatinase in controlling E. faecalis intracellular dynamics, highlighting a mechanism that may underline chronic and persistent infection.

microbiology↗

Enterococcus faecium colonization and persistence in a model of diabetic wound infection

Chronic wound infections are a common comorbidity of diabetes mellitus and can progress to amputation if untreated, yet effective strategies to manage these infections are limited. Commensals such as Enterococcus faecium and Staphylococcus epidermidis can transition into opportunistic pathogens when host defenses are compromised, underscoring the complexity of chronic wound microbiology. E. faecium, particularly vancomycin-resistant strains, are an understudied, clinically important cause of chronic diabetic wound infections. Using a low-dose streptozocin-induced diabetic mouse model, we characterized E. faecium wound infection dynamics and identified differences in colonization and clearance compared to non-diabetic animals. At eight hours post infection (hpi), control mice exhibited higher E. faecium wound colony forming units (CFU) than diabetic mice, but cleared the infection more efficiently, resulting in similar CFU by 24 hpi. By contrast, diabetic mice showed impaired clearance, with elevated CFU persisting through 72 hpi. In mixed species infection with S. epidermidis, S. epidermidis CFU increased at 72 hpi while E. faecium CFU remained comparable to single species infection. Despite strong initial cytokine and neutrophil responses, E. faecium persisted in all wounds. Sustained neutrophil recruitment at 72 hpi occurred only in diabetic mice, whereas macrophage accumulation increased from 24 to 72 hpi in all wounds, including sterile controls. Histological analysis showed epithelial hyper-thickening in both groups, indicating that diabetes and E. faecium each contribute to impaired wound healing. This study establishes a diabetic mouse model of E. faecium wound infection and suggests that E. faecium modulates innate immune responses to persist in the wound bed.

microbiology↗

Fsr quorum sensing system restricts biofilm growth and activates inflammation in enterococcal infective endocarditis

Infective endocarditis (IE) is a life-threatening biofilm-associated infection, yet the factors driving biofilm formation remain poorly understood. Here, we identified the Fsr quorum sensing (QS) system of Enterococcus faecalis as a potent negative regulator of IE pathogenesis. Using microfluidic and in vivo models, we show that Fsr is induced in late IE when bacteria become shielded from blood flow. Deleting Fsr altered biofilm metabolism and promoted robust biofilm growth and gentamicin tolerance in vivo. Furthermore, Fsr inactivation attenuated inflammation by disrupting IL-1{beta} cleavage and activation via the Fsr-regulated gelatinase (gelE), allowing biofilm to grow unchecked by the immune system. Consistent with our pre-clinical findings, analysis of two IE patient cohorts linked naturally occurring Fsr-deficient E. faecalis to prolonged bacteremia. Overall, our findings provide insights into the role of QS in biofilm growth, persistence, and immune evasion in enterococcal IE.

microbiology↗